Achieving Ultralong Red Afterglow Emission in Mn2+-Doped NH4CdCl3 Hybrid Perovskite Through Trap State Modulation

IF 8 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY
Guanfeng Liu, Shuai Zhang, Yaoyu Liu, Fanghao Xuan, Bing Teng, Shaohua Ji
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Abstract

Organic–inorganic hybrid perovskites (OIHPs) show great potential for long afterglow luminescence owing to their adjustable structures and exceptional optoelectronic properties. However, achieving stable, ultra-long afterglow emission remains a challenge, primarily because of the limitations of triplet exciton phosphorescence. This paper presents a novel Mn2+-doped NH4CdCl3 perovskite single crystal with ultra-long red afterglow emission. By introducing defect states through doping, afterglow emission is realized independently of triplet exciton phosphorescence. Under 254 nm excitation, the crystal exhibits a red afterglow lasting up to 2400 s, with controllable trap depth and concentration by adjusting the Mn2+ doping levels, thus tuning the afterglow duration. Additionally, the crystals demonstrate excellent photoluminescence (PL) under high-temperature and humid conditions. Information encryption patterns are also developed based on materials with varying doping concentrations, demonstrating their potential for anti-counterfeiting and encryption applications. This study provides a new strategy for achieving ultra-long afterglow in organic–inorganic hybrid perovskites.

Abstract Image

利用阱态调制实现Mn2+掺杂NH4CdCl3杂化钙钛矿的超长红色余辉发射
有机-无机杂化过氧化物晶石(OIHPs)具有可调结构和优异的光电特性,因此在长余辉发光方面具有巨大潜力。然而,主要由于三重激子磷光的限制,实现稳定的超长余辉发射仍然是一项挑战。本文介绍了一种具有超长红色余辉发射的新型掺杂 Mn2+ 的 NH4CdCl3 包晶单晶。通过掺杂引入缺陷态,实现了独立于三重激子磷光的余辉发射。在 254 nm 的激发下,该晶体显示出长达 2400 秒的红色余辉,通过调节 Mn2+ 的掺杂水平,可以控制阱深度和浓度,从而调整余辉的持续时间。此外,该晶体在高温和潮湿条件下也表现出卓越的光致发光(PL)性能。基于不同掺杂浓度的材料还开发出了信息加密模式,展示了其在防伪和加密应用方面的潜力。这项研究为在有机-无机混合包光体中实现超长余辉提供了一种新策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Advanced Optical Materials
Advanced Optical Materials MATERIALS SCIENCE, MULTIDISCIPLINARY-OPTICS
CiteScore
13.70
自引率
6.70%
发文量
883
审稿时长
1.5 months
期刊介绍: Advanced Optical Materials, part of the esteemed Advanced portfolio, is a unique materials science journal concentrating on all facets of light-matter interactions. For over a decade, it has been the preferred optical materials journal for significant discoveries in photonics, plasmonics, metamaterials, and more. The Advanced portfolio from Wiley is a collection of globally respected, high-impact journals that disseminate the best science from established and emerging researchers, aiding them in fulfilling their mission and amplifying the reach of their scientific discoveries.
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